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Hernansanz Agustin, P.

Publications and source records attributed to Hernansanz Agustin, P..

2 recordsLinked to original sources

Membrane surface geometry is a determinant of mitochondrial electron transfer and cellular adaptation

Energy conversion in living organisms relies on biological membranes that facilitate electron transfer between oxidoreductases. In mitochondria, this process is mediated by the electron transport chain embedded in the inner mitochondrial membrane (IMM). Under various physiological and genetic conditions, mitochondrial matrix Na+ levels increase, reducing IMM fluidity through the formation of ternary coordination adducts between Na+ and phospholipids. These adducts impair ubiquinone (CoQ) transfer between respiratory complexes, thereby promoting mitochondrial reactive oxygen species (mtROS) production and activating the hypoxic adaptive pathway. Here, we show that modifying solely the ionic subatomic interaction with phospholipids is sufficient to prevent initiation of this pathway. Compound A (CA) outcompetes Na+ for phospholipid binding without impairing CoQ transfer, thereby preventing mtROS production and hypoxic adaptation. This divergence arises from the penta-coordinate complexes formed by CA with phospholipids, in contrast to the trigonal adducts formed by Na+. This structural distinction preserves IMM fluidity because CA:phospholipid assemblies adopt a less angular configuration. These findings establish membrane-surface geometry, modulated by ion:phospholipid interactions, as an unexpected determinant of membrane biology, mitochondrial energy conversion, redox signalling, and cellular adaptation, with profound implications for physiology and disease.

biochemistry↗

Mitochondrial cardiolipin metabolism controlled by tafazzin enables ferroptosis

Mitochondria are important producers of reactive oxygen species, which are involved in triggering ferroptosis, a lipid peroxidation driven form of cell death. Paradoxically, in the rare inherited metabolic disease Barth Syndrome, we discovered a protection from erastin-induced ferroptosis, despite intrinsically elevated mitochondrial ROS levels. The affected transacylase tafazzin, which is mutated in Barth Syndrome, is pivotal for remodeling of the dimeric phospholipid cardiolipin. They unique to mitochondria and essential for shaping their membrane functionalities. We investigated which downstream effects of the pathogenic membrane alterations are responsible for the protective effect against ferroptosis. We found that while iron metabolism, the unsaturation of membrane lipids, and the metabolic activity of the cells were modifying factors, they were not causal. However, we observed that cardiolipin abnormalities are not limited to impair only inner, but also outer mitochondrial membrane protein complexes. Specifically, they impact abundance and oligomerization of voltage-dependent anion channels (VDAC) in response to oxidative stress. We found that tafazzin deficiency via alteration of cardiolipins affects VDAC functionality, thereby modulating small molecule transport and signaling between mitochondria and the remaining cell. This is in line with a reduction of mitochondria-associated membranes (MAM) sites that are formed through VDACs and trapping ROS in mitochondria where they are unable to contribute to ferroptosis. These findings demonstrate that the mitochondrial membrane architecture impacting on subcellular small molecule distribution crucially impact on the manifestation of cell fate decisions, including ferroptosis.

molecular biology↗